Vibration Analysis of Material Size-Dependent CNTs Using Energy Equivalent Model
This study presents a modified continuum model to investigate the vibration behavior of single and multi-carbon nanotubes (CNTs). Two parameters are exploited to consider size dependence; one derived from the energy equivalent model and the other from the modified couple stress theory. The energy eq...
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Shahid Chamran University of Ahvaz
2018-04-01
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doaj-7f8f23fd426d46ddb0082d88688116572020-11-24T21:06:35ZengShahid Chamran University of AhvazJournal of Applied and Computational Mechanics2383-45362383-45362018-04-0142758610.22055/jacm.2017.22579.113613086Vibration Analysis of Material Size-Dependent CNTs Using Energy Equivalent ModelMohamed A. Eltaher0Mohamed Agwa1A Kabeel2Mechanical Engineering Dept., Faculty of Engineering, King Abdulaziz University, P.O. Box 80204, Jeddah, Saudi Arabia | Mechanical Design & Production Dept., Faculty of Engineering, Zagazig University, P.O. Box 44519, Zagazig, EgyptMechanical Design & Production Dept., Faculty of Engineering, Zagazig University, P.O. Box 44519, Zagazig, EgyptMechanical Design & Production Dept., Faculty of Engineering, Zagazig University, P.O. Box 44519, Zagazig, EgyptThis study presents a modified continuum model to investigate the vibration behavior of single and multi-carbon nanotubes (CNTs). Two parameters are exploited to consider size dependence; one derived from the energy equivalent model and the other from the modified couple stress theory. The energy equivalent model, derived from the basis of molecular mechanics, is exploited to describe size-dependent material properties such as Young and shear moduli for both zigzag and armchair CNT structures. A modified couple stress theory is proposed to capture the microstructure size effect by assisting material length scale. A modified kinematic Timoshenko nano-beam including shear deformation and rotary inertia effects is developed. The analytical solution is shown and verified with previously published works. Moreover, parametric studies are performed to illustrate the influence of the length scale parameter, translation indices of the chiral vector, and orientation of CNTs on the vibration behaviors. The effect of the number of tube layers on the fundamental frequency of CNTs is also presented. These findings are helpful in mechanical design of high-precision measurement nano-devices manufactured from CNTs.http://jacm.scu.ac.ir/article_13086_1b839d2c3c70ab7e45b02e2baadad04a.pdfEnergy Equivalent ModelModified couple stress theoryCarbon NanotubeVibration of Timoshenko Nano BeamAnalytical model |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mohamed A. Eltaher Mohamed Agwa A Kabeel |
spellingShingle |
Mohamed A. Eltaher Mohamed Agwa A Kabeel Vibration Analysis of Material Size-Dependent CNTs Using Energy Equivalent Model Journal of Applied and Computational Mechanics Energy Equivalent Model Modified couple stress theory Carbon Nanotube Vibration of Timoshenko Nano Beam Analytical model |
author_facet |
Mohamed A. Eltaher Mohamed Agwa A Kabeel |
author_sort |
Mohamed A. Eltaher |
title |
Vibration Analysis of Material Size-Dependent CNTs Using Energy Equivalent Model |
title_short |
Vibration Analysis of Material Size-Dependent CNTs Using Energy Equivalent Model |
title_full |
Vibration Analysis of Material Size-Dependent CNTs Using Energy Equivalent Model |
title_fullStr |
Vibration Analysis of Material Size-Dependent CNTs Using Energy Equivalent Model |
title_full_unstemmed |
Vibration Analysis of Material Size-Dependent CNTs Using Energy Equivalent Model |
title_sort |
vibration analysis of material size-dependent cnts using energy equivalent model |
publisher |
Shahid Chamran University of Ahvaz |
series |
Journal of Applied and Computational Mechanics |
issn |
2383-4536 2383-4536 |
publishDate |
2018-04-01 |
description |
This study presents a modified continuum model to investigate the vibration behavior of single and multi-carbon nanotubes (CNTs). Two parameters are exploited to consider size dependence; one derived from the energy equivalent model and the other from the modified couple stress theory. The energy equivalent model, derived from the basis of molecular mechanics, is exploited to describe size-dependent material properties such as Young and shear moduli for both zigzag and armchair CNT structures. A modified couple stress theory is proposed to capture the microstructure size effect by assisting material length scale. A modified kinematic Timoshenko nano-beam including shear deformation and rotary inertia effects is developed. The analytical solution is shown and verified with previously published works. Moreover, parametric studies are performed to illustrate the influence of the length scale parameter, translation indices of the chiral vector, and orientation of CNTs on the vibration behaviors. The effect of the number of tube layers on the fundamental frequency of CNTs is also presented. These findings are helpful in mechanical design of high-precision measurement nano-devices manufactured from CNTs. |
topic |
Energy Equivalent Model Modified couple stress theory Carbon Nanotube Vibration of Timoshenko Nano Beam Analytical model |
url |
http://jacm.scu.ac.ir/article_13086_1b839d2c3c70ab7e45b02e2baadad04a.pdf |
work_keys_str_mv |
AT mohamedaeltaher vibrationanalysisofmaterialsizedependentcntsusingenergyequivalentmodel AT mohamedagwa vibrationanalysisofmaterialsizedependentcntsusingenergyequivalentmodel AT akabeel vibrationanalysisofmaterialsizedependentcntsusingenergyequivalentmodel |
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1716765425049534464 |